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Updated: Jul 13, 2026

Assessing Changes in Synaptic Plasticity Using an Awake Closed-Head Injury Model of Mild Traumatic Brain Injury
Published on: January 20, 2023
PERK deficiency amplifies molecular, structural, and network vulnerability to repetitive mild traumatic brain injury
Marangelie Criado-Marrero1, Sakthivel Ravi2, Daylin Barroso3
1Center for Translational Research in Neurodegenerative Disease (CTRND), University of Florida (UF), Gainesville, Florida, 32610, USA; Department of Neuroscience, College of Medicine (COM), UF, Gainesville, Florida, 32610, USA; UF McKnight Brain Institute, Gainesville, FL 32610, USA; Brain Injury, Rehabilitation, and Neuroresilience (BRAIN) Center, COM, UF, Gainesville, FL 32603; Brain Rehabilitation Research Center (BRRC), Malcom Randall VA Medical Center, North Florida/South Georgia Veterans Health System, Gainesville, FL, 32608, USA.
Abstract:
Repetitive mild traumatic brain injury (rmTBI) produces cumulative cellular stress that can lead to progressive brain dysfunction, yet the mechanisms governing vulnerability to repeated injury remain unclear. Protein kinase RNA-like endoplasmic reticulum kinase (PERK) regulates cellular proteostasis through the unfolded protein response and is implicated in neurodegeneration and acute brain injury. Here, we directly tested the role of PERK deficiency in shaping the brain's response to rmTBI. Using a mouse model of neuronal PERK deficiency, we combined spatial protein profiling and tissue analyses with resting-state functional MRI and diffusion tensor imaging to assess molecular, functional, and structural outcomes after rmTBI. PERK deficiency increased susceptibility to rmTBI-induced disruption of protein homeostasis, altered large-scale functional connectivity, and exacerbated white matter microstructural changes consistent with axonal and myelin damage. Molecular alterations were spatially aligned with imaging-defined network and white matter abnormalities. These findings identify PERK signaling as a key determinant of brain resilience to repetitive mild injury and link ER stress dysregulation to network-level dysfunction following rmTBI.
